Viscosity modifier

A viscosity modifier with xanthan gum, guar gum, and gum arabic addresses the need for shape-retaining seasonings by ensuring easy dispensing and maintaining texture, applicable in diverse fields.

JP7731664B2Active Publication Date: 2025-09-01SOMAR CORP
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Patent Information

Application Number
JP2020200806
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-12-03
Publication Date
2025-09-01
Estimated Expiration
2040-12-03

AI Technical Summary

Technical Problem

There is a demand for seasonings that have shape retention, excellent texture, and can be easily squeezed out of their containers, but no versatile viscosity modifiers capable of imparting these properties have been developed.

Method used

A viscosity modifier containing xanthan gum, galactomannan (preferably guar gum), and gum arabic, with specific viscosity ranges at different shear rates, is used to impart shape retention to liquid foods while maintaining texture and smoothness.

Benefits of technology

The viscosity modifier allows semi-solid foods to be easily squeezed out of containers without splashing or dripping, suitable for various uses including outdoor applications, and can be applied to foods, cosmetics, pharmaceuticals, and industrial products.

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Abstract

To provide a viscosity modifier capable of imparting shape retention to liquid products while maintaining texture and smoothness of the food products.SOLUTION: Prepared is a viscosity modifier containing xanthan gum, galactomannan and gum arabic. As the galactomannan, guar gum is preferable. Further, the viscosity V0.5 of the solution obtained by adding 6 mass% of the viscosity modifier to distilled water at 20°C and a shear rate of 0.5 / sec is in the range of 50 Pa sec to 500 Pa sec, and the viscosity V50 of the above solution of 20°C at a shear rate of 50 / sec is in the range of 2.0 Pa sec to 18 Pa sec, and a ratio of the viscosity V0.5 to the viscosity V5 of the solution at 20°C and a shear rate of 5 / sec is preferably 3.5 to 7.5.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to a viscosity adjuster, and more particularly to a viscosity adjuster that is added to foods and the like to impart shape retention. [Background technology]

[0002] Shape-retaining (gel-like) seasonings, which are produced by adding thickeners (viscosity adjusters) made of starch, cereal flour, polysaccharides, etc., to seasoning ingredients, have low fluidity and are therefore free from dripping and splashing, making them suitable for use as toppings. Patent Document 1 discloses a seasoning containing dried vegetables and a thickener, characterized in that the amount of dried vegetables is 6% to 19% of the total weight before adding water, and the ingredient portion after preparation is 60% to 98% of the total weight. The seasoning in Patent Document 1 contains a large amount of ingredients that maintain the natural crisp texture of vegetables, and does not have excessive fluidity, so that the liquid does not drip even when placed on ingredients to be seasoned, such as meat or vegetables. The document also describes that this eliminates the need for consumers to worry about the liquid splashing on their clothes, allowing them to enjoy the texture of real vegetables without getting their hands dirty, even at outdoor barbecues. Patent Document 1 lists as thickeners raw starches such as potato starch, corn starch, wheat flour starch, rice starch, and waxy starch; processed starches such as pregelatinized starch and retrograded starch; wheat flour, rice flour, corn flour, and other grain flours; gums such as xanthan gum, locust bean gum, and tamarind gum; various polysaccharides such as carrageenan, alginic acid, pectin, and agar; and gelatin. Patent Document 2 discloses a gel seasoning containing raw soy sauce and using xanthan gum and locust bean gum as gelling agents, characterized in that the raw soy sauce is raw soy sauce from which components with a molecular weight of more than 50,000 have been removed. It is described that the gel seasoning of Patent Document 2 contains raw soy sauce, yet has good gel shape retention, a light and vivid color, and looks good as a topping ingredient. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-170353 [Patent Document 2] Japanese Patent Application Laid-Open No. 2013-162781 Summary of the Invention [Problem to be solved by the invention]

[0004] In recent years, there has been a demand for seasonings that have shape retention, excellent texture, and can be easily squeezed out of their containers. However, at present, no versatile viscosity modifiers capable of imparting these properties to seasonings have been obtained. Therefore, an object of the present invention is to provide a viscosity modifier that can impart shape retention to liquid foods while maintaining the texture and smoothness of the foods. [Means for solving the problem]

[0005] In view of the above problems, the present inventors conducted extensive research and found that the above problems can be solved by a viscosity modifier containing xanthan gum, galactomannan, and gum arabic, and thus arrived at the present invention. That is, the viscosity modifier of the present invention is characterized by containing xanthan gum, galactomannan, and gum arabic. The galactomannan is preferably guar gum. In addition, the viscosity V of a solution of the viscosity modifier in distilled water at 6% by mass at 20°C and a shear rate of 0.5 / sec is 0.5 is the viscosity V of the above solution at 20°C and a shear rate of 50 / s in the range of 50 Pa·s to 500 Pa·s. 50 is in the range of 2.0 Pa·sec to 18 Pa·sec, and the viscosity V 0.5 and the viscosity V5 of the solution at 20° C. and a shear rate of 5 / sec is preferably 3.5 to 7.5. The seasoning of the present invention contains the viscosity adjuster. [Effects of the Invention]

[0006] The viscosity adjuster of the present invention can impart shape retention to liquid foods (semi-solidify them) while maintaining texture and smoothness. Therefore, by applying the viscosity adjuster of the present invention, semi-solid foods can be easily obtained that are easy to squeeze out of containers without risk of splashing or dripping, and are suitable for various uses, including outdoor use. The viscosity modifier of the present invention can be used not only in food products but also in various fields such as cosmetics, pharmaceuticals and industrial products, for the purpose of imparting shape retention to liquid materials. DETAILED DESCRIPTION OF THE INVENTION

[0007] Hereinafter, embodiments of the present invention will be described in detail. The viscosity adjuster of the present invention contains xanthan gum, galactomannan, and gum arabic. By adding the viscosity adjuster of the present invention containing the above components to a liquid food such as a liquid seasoning, it is possible to impart shape retention while maintaining texture and smoothness. Each component will be explained below.

[0008] (A) Xanthan gum The viscosity modifier of the present invention contains xanthan gum, a thickening polysaccharide. Xanthan gum is a water-soluble natural polysaccharide obtained by the extracellular production of corn-derived starch by a microorganism (Xanthomonas campestris). Its primary structure comprises a main chain of β-1,4-linked D-glucose units, and side chains consisting of D-mannose and D-glucuronic acid bound to anhydroglucose in the main chain. The side chains have two D-mannose molecules and D-glucuronic acid bound to every other D-glucose residue in the main chain. The D-mannose at the end of the side chain may be pyruvate, and the C-6 position of the D-mannose bound to the main chain may be acetylated. The molecular weight of the above polysaccharides is known to be approximately 2 to 50 million. In the present invention, the molecular weight of xanthan gum is not particularly limited.

[0009] In the present invention, commercially available xanthan gum can also be used, such as Neosoft XR (manufactured by Taiyo Kagaku Co., Ltd.), SATIAXANE CX90 (manufactured by Cargill), SAN ACE (trademark), SAN ACE (trademark) S, SAN ACE (trademark) ES, SAN ACE (trademark) C, and BISUTOP (trademark) D-3000-DF-C (manufactured by San-Ei Gen F.F.I. Co., Ltd.).

[0010] The content of xanthan gum is not particularly limited, but is preferably 10% by mass or more and 40% by mass or less, and more preferably 15% by mass or more and 30% by mass or less, based on the total mass of the viscosity modifier. By setting the content of xanthan gum within the above range, better shape retention can be imparted.

[0011] (B) Galactomannan The viscosity modifier of the present invention contains galactomannan. Galactomannan is a water-soluble polymer composed of a main chain of mannose and side chains of galactose, and has a portion with a galactose side chain and a smooth region without a side chain. It is believed that when xanthan gum and galactomannan are mixed, the smooth regions of the xanthan gum and galactomannan form hydrogen bonds and crosslink, resulting in an increase in viscosity and gelation. Known galactomannans include guar gum, tara gum, and locust bean gum, which have a main chain mannose to side chain galactose ratio of 2:1, 3:1, and 4:1, respectively. Any of these galactomannans can be used in the present invention, but guar gum is particularly preferred in view of the thickening effect due to interaction with xanthan gum and cost. In the present invention, one type of galactomannan or multiple types of galactomannans can be used.

[0012] Guar gum (scientific name: Cyamopsis tetragonoloba) is a polysaccharide obtained from the seeds of an annual legume plant cultivated in Pakistan and India. In the present invention, commercially available guar gum can also be used, such as PROCOL U (manufactured by Habgen Guargums Limited) and VIDOGUM GHK 175 (manufactured by Unitec Foods Co., Ltd.).

[0013] Tara gum is a neutral polysaccharide obtained from the endosperm of the seeds of the legume plant Tara. Commercially available tara gum can also be used in the present invention. Examples of commercially available tara gum include Tara Gum (purified product) MT-120 (manufactured by Mitsubishi Chemical Foods Corporation), Tara Gum (manufactured by Ina Foods Co., Ltd.), and VIDOGUM SP 175 (manufactured by Unitec Foods Co., Ltd.).

[0014] Locust bean gum, also known as carob gum, is a polysaccharide obtained by separating and grinding the endosperm of the seeds of the carob (scientific name: Ceratonia siliqua L.), an evergreen tree of the legume family that is widely grown in the Mediterranean region (North Africa, the Middle East, and Southern Europe) and the Canary Islands. In the present invention, commercially available locust bean gum can also be used, such as Sesalpinia LBG LN-1 / 200 (manufactured by Tate & Lyle) and ViscoguM BJ (manufactured by Cargill).

[0015] The content of galactomannan is not particularly limited, but is preferably 15% by mass or more and 45% by mass or less, and more preferably 20% by mass or more and 35% by mass or less, based on the total mass of the viscosity modifier. By setting the content of galactomannan within the above range, better shape retention can be imparted.

[0016] (C) Gum arabic Gum arabic is obtained by drying secretions extracted from wounds in the bark of the Acacia acacia tree, a plant native to the Nile region of Africa. It is used in a wide range of applications, including as an emulsifier and stabilizer in food and beverages, as a coating agent for pharmaceutical tablets, and in industrial products such as paints and inks. Gum arabic is composed of a glycoprotein (hereinafter referred to as "AGP") in which type II arabinogalactan and β-arabinooligosaccharide sugar chains are attached to a peptide chain. Type II arabinogalactan has a structure in which β-1,6-galactan side chains are attached to the β-1,3-galactan main chain that is linked to the peptide chain of AGP, and the terminals are modified with arabinose, rhamnose, glucuronic acid, or the like. Type II arabinogalactan has a wide variety of modified sugars, and arabinose is linked to either a furanose or pyranose type via an α- or β-linkage.

[0017] In the present invention, commercially available gum arabic can also be used, such as GUM ARABIC 396A (manufactured by Alland & Robert).

[0018] The content of gum arabic is not particularly limited, but is preferably 30% by mass or more and 70% by mass or less, and more preferably 40% by mass or more and 60% by mass or less, based on the total mass of the viscosity modifier. By setting the content of gum arabic within the above range, better smoothness can be imparted.

[0019] The viscosity modifier of the present invention may contain other additives, such as a pH adjuster, as long as they do not affect the original properties of the viscosity modifier.

[0020] The viscosity modifier of the present invention can be obtained by mixing the above-mentioned components. By adjusting the composition of the above-mentioned (A) xanthan gum, (B) galactomannan, and (C) gum arabic and mixing them, it is possible to impart shape retention to a liquid food while maintaining texture and smoothness. The mixing method is not particularly limited, and general powder mixing methods can be used. Specific examples include paddle mixers, tumbler mixers, W-type mixers, V-type mixers, drum mixers, ribbon mixers, conical screw mixers, and ball mills. The viscosity modifier of the present invention can obtain better properties by uniformly mixing the above components at the particle level. The viscosity modifier of the present invention can also be produced by granulation.

[0021] In order to obtain a thickened product with excellent shape retention, a viscosity modifier that has a high thickening effect and can suppress gelation is required. In the viscosity modifier of the present invention, gum arabic moderately alleviates the viscosity increase and gel formation caused by hydrogen bonding between xanthan gum and galactomannan, thereby imparting shape retention to a liquid while maintaining smoothness. Guar gum, tara gum, and locust bean gum are known as galactomannans, each of which has a different ratio of mannose in the main chain to galactose in the side chain. The effects of the present invention can be observed regardless of which of these is used. Among these, when guar gum is used in particular, gel formation due to hydrogen bonding between xanthan gum and guar gum is less likely to occur, and the relaxation effect of gum arabic allows for the production of a thickened product that is more uniform and has excellent shape retention and smoothness.

[0022] The viscosity adjuster of the present invention can be added to liquid foods. For example, seasonings and the like using the viscosity adjuster of the present invention can be easily squeezed out of their containers and can retain their shape after being squeezed out, making them suitable for use as toppings and the like. Specific examples of food applications include sauces, dressings, etc. The amount of the viscosity modifier of the present invention to be added varies depending on the intended use, etc., but is preferably in the range of 2% by mass to 10% by mass, and more preferably in the range of 4% by mass to 8% by mass. By setting the amount of the viscosity modifier of the present invention to be added in the above range, better shape retention, smoothness, and texture can be obtained.

[0023] The viscosity modifier of the present invention is a viscosity modifier containing a polysaccharide, and the viscosity V of a solution obtained by adding the viscosity modifier in a proportion of 6% by mass to distilled water at 20°C and a shear rate of 0.5 / sec is 0.5 is the viscosity V of the above solution at 20°C and a shear rate of 50 / s in the range of 50 Pa·s to 500 Pa·s. 50 is in the range of 2.0 Pa·sec to 18 Pa·sec, and the viscosity V 0.5and the viscosity V5 of the solution at 20°C and a shear rate of 5 / sec is 3.5 to 7.5. The viscosity adjuster can impart shape retention to liquid foods while maintaining an even better texture and smoothness.

[0024] The viscosity modifier of the present invention can also be applied to liquid cosmetics. Specific examples of liquid cosmetics include skin cosmetics (lotion, emulsion, serum, pack, moisturizing cream, massage cream, cold cream, cleansing cream, facial cleanser, vanishing cream, emollient cream, hand cream, antiperspirant / deodorant, sunscreen cosmetics, etc.), finishing cosmetics (foundation, powder, lipstick, lip balm, blush, sunscreen cosmetics, eyebrow ink, eyelash cosmetics such as mascara, nail polish, nail polish remover, etc.), hair cosmetics (shampoo, hair rinse, hair tonic, hair treatment, pomade, mascara, hair cream, balm, hair styling agent, hair spray, hair dye, hair growth agent, hair care product, etc.), cleansing agents such as hand cleaners, bath cosmetics, shaving cosmetics, fragrances, toothpaste, ointments, patches, etc.

[0025] The viscosity modifier of the present invention can also be applied to liquid pharmaceuticals, specific examples of which include oral preparations, nasal preparations, infusion preparations, tube-administered preparations, ointments, medicated cosmetics, vitamin-containing health supplements, medicated hair growth agents, medicated toothpastes, bath additives, anthelmintics, underarm odor control agents, mouth fresheners, biomaterials, patches, and skin applications.

[0026] Furthermore, the viscosity modifier of the present invention can be applied to liquid industrial products, such as pigments, paints, inks, deodorizers and air fresheners, antibacterial and antifungal agents, adhesives, coating agents, sealants, heat dissipation agents, various oils (cutting oil, lubricating oil, etc.), puncture repair agents, tires, bicycle and automobile tubes, surfactants (dispersants), sanitary materials, wetting materials, moisture-absorbing materials, adsorbent materials, surface protective agents, culture materials, detergents, liquid soaps, and various batteries.

[0027] The viscosity modifier of the present invention can be effectively used in aqueous liquids, and can also be effectively used in oil-based liquids containing water, and by adding the viscosity modifier of the present invention together with an emulsifier, excellent emulsification and shape-retaining effects can be obtained. [Example]

[0028] The following examples further illustrate the present invention in detail, but are not intended to limit the scope of the present invention. In the examples, "%" and "parts" refer to % by mass and parts by mass unless otherwise specified.

[0029] <Constituents of viscosity modifiers> (A) Xanthan gum (a) Xanthan gum: Neosoft XR (manufactured by Taiyo Kagaku Co., Ltd.) (B) Galactomannan (b1) Guar gum: PROCOL U (manufactured by Habgen Guargums Limited) (b2) Tara gum: MT1000 (Mitsubishi Chemical Foods Corporation) (b3) Locust bean gum: CESALPINIA LBG LN-1 / 200 (manufactured by Tate & Lyle) (C) Gum arabic (c) Gum Arabic: GUM ARABIC 396A (manufactured by Alland & Robert)

[0030] (Preparation of Viscosity Modifier) Xanthan gum, galactomannan, and gum arabic were weighed out in the blending ratios shown in Tables 1 and 2, placed in an i-boy wide-mouth bottle (250 ml), and mixed by hand shaking for 5 minutes to obtain viscosity modifiers of Examples 1 to 7. Similarly, each component was weighed out in the blending ratio shown in Tables 1 and 2, placed in an i-boy wide-mouth bottle (250 ml), and mixed by hand shaking for 5 minutes to obtain viscosity modifiers of Comparative Examples 1 to 7.

[0031] (Preparation and Evaluation of Thickeners) The viscosity modifiers of Examples 1 to 7 and Comparative Examples 1 to 7 were added to commercially available soy sauce in the blending ratios shown in Tables 1 and 2, and the mixture was stirred at 85°C for 3 minutes using a stirrer to obtain a thickened product. With the temperature of the thickened product maintained at 25°C, the viscosity was measured at shear rates of 0.5 / sec, 5 / sec, and 50 / sec using a rotational rheometer (coaxial double cylinder type). The viscosity at each shear rate, the viscosity ratio at shear rates of 0.5 / sec and 5 / sec, and the viscosity ratio at shear rates of 5 / sec and 50 / sec were calculated, and the results are shown in Tables 1 and 2. Tables 1 and 2 also show the results of evaluating the texture, smoothness (ease of squeezing), and shape retention of each thickened product according to the following criteria. <Texture evaluation criteria> 〇: Smooth in the mouth ×: Crumbly (crumbly like jelly) <Smoothness (ease of squeezing)> The thickened material was placed in a plastic bag and the ease of squeezing was evaluated according to the following criteria. 〇: Can be squeezed out smoothly ×: Jelly-like and crumbles -: Flows out in liquid form <Shape retention> 〇: Able to maintain shape ×: unable to maintain shape

[0032] In Comparative Example 1, in which a viscosity modifier containing only xanthan gum was added to soy sauce, an increase in viscosity was observed, and the resulting thickened product had a good texture and smoothness, but it was unable to maintain its shape after being squeezed out. In Comparative Example 2, in which a viscosity modifier containing gum arabic in addition to xanthan gum was used, the viscosities at shear rates of 0.5 / s, 5 / s, and 50 / s were low, at 2.4 Pa·s, 2.2 Pa·s, and 1.0 Pa·s, respectively, and the thickened product was liquid, flowed out of the container, and was unable to maintain its shape. In Comparative Example 3, which used a viscosity adjuster consisting of guar gum and gum arabic, and Comparative Example 4, which used a viscosity adjuster consisting of locust bean gum and gum arabic, the viscosity of the thickened product was low, just like in Comparative Example 2, and the thickened product became liquid, flowed out of the container, and was unable to maintain its shape. On the other hand, in Comparative Example 5, which used a viscosity modifier consisting of xanthan gum and guar gum, the viscosities at shear rates of 0.5 / s, 5 / s, and 50 / s were high at 419 Pa·s, 67 Pa·s, and 7 Pa·s, respectively, and the resulting thickened product could be squeezed out smoothly from the container and had good shape retention. However, the texture was crumbly and did not provide a good mouthfeel. It was found that the viscosity modifier of Example 1, in which gum arabic was further added to the viscosity modifier of Comparative Example 5, had a significantly lower viscosity at all shear rates than Comparative Example 5, had excellent texture and smoothness, and was able to maintain shape retention. Similarly, excellent texture, smoothness, and shape retention were observed in Examples 2, 3, 4, and 5, in which the ratios of xanthan gum, guar gum, and gum arabic were changed. From the above results, the effectiveness of the viscosity adjuster of the present invention containing xanthan gum and galactomannans guar gum and gum arabic was confirmed.

[0033] [Table 1]

[0034] Table 2 shows the results of evaluation using viscosity modifiers prepared in the same manner as in Example 1, except that tara gum and locust bean gum were used instead of guar gum as the galactomannan (Examples 6 and 7). For comparison, Table 2 also shows the results of evaluation using viscosity modifiers prepared in the same manner as in Comparative Example 5, except that tara gum and locust bean gum were used instead of guar gum as the galactomannan (Comparative Examples 6 and 7). In Comparative Example 6, which used a viscosity modifier consisting of xanthan gum and tara gum, the thickened product gelled and had shape retention, but when squeezed out of the plastic bag, it crumbled into crumbs and did not have an excellent texture when placed in the mouth. Because the thickened product gelled, it was not possible to measure its viscosity. In contrast, when the viscosity modifier of Example 6, which added gum arabic to the composition of Comparative Example 6, was used, the thickened product had fluidity and was found to have excellent texture, smoothness, and shape retention. In Comparative Example 7, which used a viscosity modifier consisting of xanthan gum and locust bean gum, the thickened product gelled and exhibited shape retention, but when squeezed out of the plastic bag, it crumbled into crumbs and did not provide an excellent texture when placed in the mouth. As with Comparative Example 6, the thickened product gelled, making it impossible to measure its viscosity. In contrast, when the viscosity modifier of Example 7, which added gum arabic to the composition of Comparative Example 7, was used, the thickened product had fluidity and provided excellent texture, smoothness, and shape retention. From the above results, it was confirmed that the effect of the viscosity adjuster of the present invention can be obtained even when tara gum and locust bean gum are used instead of guar gum as the galactomannan. Furthermore, it was found that when guar gum is used as the galactomannan, it is difficult to form a gel even at high viscosity, so that a thickened product with a more uniform and excellent texture, smoothness, and shape retention can be obtained. The above evaluation was carried out by adding a viscosity adjuster to commercially available soy sauce. However, when water (distilled water) was used instead of soy sauce, a similar tendency in viscosity change was observed, and it was confirmed that similarly excellent texture, smoothness, shape retention, and viscosity could be obtained.

[0035] [Table 2]

Claims

1. A soy sauce containing a viscosity modifier containing xanthan gum, galactomannan, and gum arabic, The content of the viscosity modifier is 2% to 10% of the total mass of the soy sauce, The content of the gum arabic is 30% to 70% by mass of the total viscosity modifier. Characterized by soy sauce.

2. 2. The soy sauce according to claim 1, wherein the galactomannan is guar gum.

Citation Information

Patent Citations

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